A paint for structures comprising infrared reflecting particles of a metal oxide or noble metal on a substrate comprising a plastic or mica.

Patent
   4916014
Priority
Oct 30 1987
Filed
Oct 30 1987
Issued
Apr 10 1990
Expiry
Oct 30 2007
Assg.orig
Entity
Small
76
4
EXPIRED
1. In a paint composition having a film forming binder the improvement which comprises incorporating into said paint composition particles of a substrate with a layer of an infrared reflecting metal, said metal being coated with a dielectric material, said particles being present in an amount effective for reflecting infrared radiation when applied to a structure.
2. The paint of claim 1 wherein the dielectric material is selected from titanium dioxide and zinc sulfide.
3. The paint of claim 1 wherein the metal is a noble metal.
4. The paint of claim 1 where said substrate is selected from the group consisting of mica, glass, non-infrared absorbing silicate, high molecular weight solid hydrocarbon and plastic material.
5. The paint of claim 1 wherein the substrate has a particle size in the range of from about 20 microns to about 2 millimeters.
6. The paint of claim 4 wherein said substrate is a non-infrared absorbing silicate.
7. The paint of claim 4 wherein said substrate is mica.
8. The paint of claim 4 wherein said substrate is glass.

This invention relates to coatings for structures exposed to the atmosphere, particularly sunlight, for example buildings, ships and vehicles, and for construction materials which are to be used at the exterior of such structures, and compositions therefor.

More particularly, there is provided a process and a paint composition for reflecting infrared radiation from a building structure.

Paints are applied to buildings and other structures exposed to the atmosphere in order to give protection against the weather and for decorative effect. Paints are not usually used in connection with radiation except for camouflage.

U.S. patent application Ser. No. 226,787 filed Jan. 21, 1981 relates to a camouflage material effective in the spectral range from visible light to radar waves having in sequence a fabric texture base, a soft plastic coating on the base, a metallic layer adhering to the plastic coating and a paint layer thereon wherein the metallic layer and paint layer in combination have an emission factor in the 3 to 5 μm spectral region of between 30 to 70% and in the 8 to 14 μm spectral region of between 40 to 85%.

U.S. application Ser. No. 495,354 filed Dec. 6, 1982 discloses a camouflage material of the above type comprising a base layer coated with a reflective conductive layer containing aluminum, copper or zinc which is reflective in the range of terrestrial thermal radiation and in the radar region of the spectrum and has a surface resistivity of not more than 0.5 to 10 ohms per square. This reflective layer is coated with a camouflage paint having reflective properties in the visible and near IR spectral regions similar to the natural warm background and incorporated in a binder having good transparency in windows II and III (3 to 5 μm and 8 to 14 μm, respectively). This reduces the emission contrast.

British Patent No. 1,605,131, published Dec. 6, 1981, discloses a camouflage object comprising a body having a surface which is highly reflective in the spectral ranges 3 to 5 μm (window II) and 8 to 14 μm (window III) and a coating of a camouflage paint on the highly reflecting surface. The paint contains a pigment having camouflage properties in the visible and near IR range and a binding agent and has an emissivity less than 90% in the spectral range of 3 to 5 μm and 8 to 14 μm. The emission power in windows II and III is "structure" by applying a priming paint comprising colors which are highly reflecting, in the manner of a clean metal surface, alternating with colors having a black effect in the long-wave IR range. "Structuring" may also be obtained by using a priming paint which is highly reflective and using a camouflage paint comprising pigments having different absorbing and/or scattering properties. A third method of "structuring" is obtained by using a primary paint which is highly reflecting and a camouflage paint with uniform pigmentation applied with locally different thicknesses. The binding agent suitably has a high absorption in the range from 5.5 to 7.5 μm.

Infrared reflectors are compounds which reflect infrared energy. Infrared reflecting films have been used to coat windows in high energy laser systems (see, "Infrared Coatings for High Energy Laser Reflectors and Windows", Morris Braunstein, SPIE, Vol. 140, Optical Coatings-Applications and Utilization II, pp. 85-94 (1978). They have also been used to construct transparent heat mirrors for architectural glass coatings, light bulb envelopes, protective lenses, solar heat devices and the like. (See, "Materials for Transparent Heat Mirror Coatings", G. Haacke, SPIE, Vol. 324, Optical Coatings for Energy Efficiency and Solar Applications, pp. 10-15 (1982).

The present invention is directed to an infrared reflecting composition for coatings for structures exposed to sunlight which reduce heating of the structure by the heating rays of the sun. In accordance with the invention, the structures are provided with at least one outer coating comprising an infrared reflecting effective amount of particles of an infrared reflecting material in combination with a an inert transparent non-infrared absorbing substrate. The present invention is also directed to methods of reflecting infrared radiation away from the structure by applying said compositions containing infrared reflecting material and substrate to the structure.

The substrates employed in the present invention are, preferably, substantially transparent or reflect light in a manner which approximates the color of the paint composition or coating composition in which they are employed. The infrared reflecting materials are utilized in combination with a substrate such as fine particles of mica, glass, non-infrared absorbing silicates and the like, high molecular weight solid hydrocarbons or a plastic material, for example, polymethacrylate, polyethylene terephthalate, and the like. The particle size of the substrate should be sufficiently small so as to enable the coated particle to be easily and evenly distributed throughout the paint composition. The preferred particle size of the substrate is within the range of from about 20 microns to about 2 millimeters. Mica is the preferred substrate for use in the present invention.

The fine particles of the substrate are coated with at least one layer comprising an infrared reflecting amount of an infrared reflecting material. The infrared reflecting materials are preferably substantially transparent or reflect light in a manner which approximates the color of the composition in which they are incorporated. Under these circumstances, the present infrared reflecting material composition is substantially invisible or at least barely noticeable when applied to the structure. The infrared reflecting materials particularly suited for the present invention include metals from Groups IB, IIb, IIA, IVA, VIIB and VIIIB of the Periodic Table.

The infrared reflecting metal is coated on the substrate to a thickness sufficient to insure a suitable degree of infrared reflectance. For most applications including protection from infrared radiation generated by the sun, it is preferred to coat the substrate with the metal to a thickness in the range of from about 10,000 to 50,000 A.

The metals which are preferably employed as infrared reflectors in the present invention include the noble metals (e.g., gold, silver, platinum, etc.), zinc, nickel, copper and aluminum. In a preferred embodiment of the invention, the metal may be coated on each of its sides with a dielectrical material such as titanium dioxide or zinc sulfide or combinations thereof to contain an infrared reflecting composition which has improved visible transparency and enhanced infrared reflectivity.

The thickness of the metal containing infrared reflecting coating is preferably in the range of from about 100 to about 300 A.

The infrared reflecting compositions may be produced by applying a coating of the infrared reflecting material on the fine particles of the substrate by conventional methods such as chemical vapor deposition, evaporation, sputtering, spray pyrolysis and the like. Alternatively, the substrate may be coated as a sheet and then the coated sheet ground into fine particles.

The coated substrates may be added to conventional coating compositions such as paints and pastes and then applied to structures which are exposed to infrared radiation.

The film-forming binder for the top-coat paint of the invention can in general be any of those used in the paint industry, for example, an alkyd resin (including modified alkyds), an epoxy resin (including epoxy esters), an oleoresin, a chlorinated rubber, a vinyl resin, a polyurethane, a polyester, an organic or inorganic silicate, a polyamide, or an acrylic polymer. Two or more compatible film-forming organic polymers can be used in the paint. An extender resin such as a hydrocarbon resin can be present. A plasticiser for the binder resin, for example a chlorinated paraffin or a low molecular weight resin such as an acrylic resin or a polybutene, may be used. A preferred binder for a masonry paint is, for example, an acrylic polymer such as a copolymer of one or more alkyl acrylates and methacrylates, preferably a styrene/acrylic copolymer containing 25-70% of acrylic ester units and 25-70% of styrene units. Top coat paints for use over a primer on metallic structures can, for example, use an acrylic binder, preferably a styrene/acrylic copolymer or an alkyd resin. The use of a plasticizer is preferred with such copolymers.

The structure or construction material may, for example, be of brick, concrete, plaster, plastics, wood, fibre board or metal, provided that in the case of metal the surface to be coated has previously been coated. Such surfaces may collectively be referred to as non-metallic surfaces. By a "top-coat paint" is meant a paint which is intended to be exposed in use, that is it is not to be over-coated. When the paint is applied to masonry such as brick or concrete it may be the only coating applied to the masonry, whereas when it is applied to metal it is applied over a primer. Such a primer is generally one containing a pigment.

The infrared reflecting material volume concentration of the coating composition is preferably at least 10 percent, more preferably at least 25 percent.

The following examples are for illustrative purposes only and are not meant to limit the invention as set forth in the claims forming a part of the application.

PAC Preparation of A Sandwich Film of Titanium Dioxide (Dielectric) and Gold

A sheet of mica is ultrasonically cleaned in a heated decontamination solution (DECONTAM sold by Electronic Space Products, Inc., Los Angeles, Calif.), rinsed in deionized water and blown dry in nitrogen gas.

A TiO2 target is presputtered at 1.6 W/cm2 in an Argon-oxygen mixture (10 vol % Oxygen) for 15 minutes, then in Argon for 15 minutes. The flow rates of the Argon-Oxygen mixture and Argon are kept at about 74 cm3 /min. The sputtering pressure is 7-10×10-3 Torr.

A TiO2 film having a thickness of about 180 A is deposited on the sheet of mica by sputtering at 0.8 W/cm2 for 7.5 minutes in Argon at a flow rate of about 74 cm3 /min at the same sputtering pressure employed above.

A film of gold approximately 180 A thick is deposited by sputtering at 0.4 W/cm2 for 35 seconds in Argon and the same flow rate and sputtering pressure described above for depositing the TiO2 film.

Another TiO2 film is deposited on the gold film in the same manner as described above for the deposition of the initial TiO2 film. The resulting product reflects at least about 75% infrared radiation in the near IR region (750-1000 nm) and approaches 100% reflectance at about 3,000 nanometers.

PAC Gold Coated Mica

A piece of gold wire 19.2 mm long and 0.2 mm wide weighing about 8 mg was twisted around a tungsten filament secured within a Denton Vacuum Machine Model No. DV-502. The filament was connected to two electrodes and a petri dish containing fine particles of mica (e.g., 20 microns to 2 millimeters) was placed about 5 to 7.5 cm below the filament.

The gold wire was heated and subsequently evaporated onto the mica particles at a vacuum pressure of 10-5 Torr at 20 amps and 45 volts for 3 seconds.

A white paint having a pigment volume concentration of 50 percent and suitable for use on masonry was prepared by ball-milling the following ingredients until the particle size was about 40 microns.

______________________________________
Percent by Weight
______________________________________
`Pliolite AC-4` styrene acrylic copolymer
7.8
`Cereclor` chlorinated paraffin plasticiser
7.8
Finely ground gold Coated Mica
18.3
of Example 1
Titanium dioxide 16.1
Calcium carbonate 8.3
Mica 2.1
Diatomaceous earth 2.2
Zinc Oxide 0.9
Bentonite 0.4
White spirit solvent 27.4
Xylene solvent 8.7
______________________________________

If desired, the solvent may be reduced to prepare a paste-coating composition. In lieu of gold there may be utilized copper, tin, aluminum, or any other infrared reflecting metal.

A masonry paint was prepared having the composition described in Example 3 but containing only 16.3 percent of the finely ground gold coated mica of Example 3 and 2.0 percent sodium zinc molybdate.

Top-coat paints having a pigment volume concentration of about 40 percent and suitable for use on the upper parts of ships were prepared using the formulations of Examples 3 and 4 respectively with the omission of the calcium carbonate.

The paints had the same good heat reflecting property as the paint of Example 3.

While this invention has been illustrated and described in connection with certain preferred embodiments thereof, it will be apparent to those skilled in the art that the invention is not limited thereto. Accordingly, it is intended that the appended claims cover all modifications which are within the spirit and scope of the invention.

Weber, Michael R., Weber, Paul

Patent Priority Assignee Title
10053865, Jul 07 2006 CertainTeed LLC Solar heat responsive exterior surface covering
10114156, Nov 28 2016 Ford Global Technologies, LLC Vehicle components utilizing infrared reflective detectable layer and infrared transmissive decorative layer
10214449, Mar 31 2008 CertainTeed LLC Coating compositions for roofing granules, dark colored roofing granules with increased solar heat reflectance, solar heat-reflective shingles and process for producing the same
10245816, Sep 07 2005 CertainTeed LLC Solar heat reflective roofing membrane and process for making the same
10246879, May 24 2007 CertainTeed LLC Roofing granules with high solar reflectance, roofing products with high solar reflectance, and processes for producing same
10301479, Jun 10 2013 BLUE RIDGE FIBERBOARD, INC Liquid coating for roofing system fiberboard and processes for making and using the same
10309111, Aug 20 2009 CertainTeed LLC Roofing granules with improved luster, roofing products including such granules, and process for preparing same
10316520, Oct 06 2003 CertainTeed LLC Colored roofing granules with increased solar heat reflectance, solar heat-reflective shingles and process for producing same
10392806, Mar 15 2010 CertainTeed LLC Roofing granules with high solar reflectance, roofing products with high solar reflectance,and processes for preparing same
10414923, Jun 10 2013 Blue Ridge Fiberboard, Inc. Liquid coating for roofing system fiberboard and processes for making and using the same
10443242, Apr 03 2007 CertainTeed LLC Surfacing media with flame retarding effects and high solar reflectance, and method of making same
10584850, Jun 05 2012 TRINSEO EUROPE GMBH Optical reflection films
10730799, Dec 31 2016 CertainTeed Corporation Solar reflective composite granules and method of making solar reflective composite granules
10882780, Oct 23 2015 PILKINGTON GROUP LIMITED Process for manufacturing a glazing, and glazing thereby produced
11021877, Apr 19 2007 CertainTeed LLC Post-functionalized roofing granules and process for preparing same
11124658, Jan 13 2016 NIPPON PAINT HOLDINGS CO , LTD Infrared reflective coating composition
11130708, May 24 2007 CertainTeed LLC Roofing granules with high solar reflectance, roofing products with high solar reflectance, and processes for preparing same
11255089, Oct 06 2003 CertainTeed LLC Colored roofing granules with increased solar heat reflectance, solar heat-reflective shingles and process for producing same
11453614, Dec 31 2016 CertainTeed LLC Solar reflective composite granules and method of making solar reflective composite granules
11692351, Sep 22 2009 CertainTeed LLC Solar heat-reflective roofing granules, solar heat-reflective shingles and process for producing the same
11725388, Apr 19 2007 CertainTeed LLC Post-functionalized roofing granules and process for preparing same
5436077, Jun 07 1993 NIPPON SHEET GLASS CO , LTD Glass flake having dense protective covering layer
5607995, Mar 25 1993 Rafael-Armament Development Low gloss compositions for high reflectance films in the infra red range
6017981, Jan 17 1995 Coating material with reflective properties in two wavelength ranges, and absorbent properties in a third wavelength range
6157320, May 28 1997 Northrop Grumman Systems Corporation Enhanced paint for microwave/millimeter wave radiometric detection applications and method of road marker detection
6174360, Oct 26 1998 Ferro Corporation Infrared reflective color pigment
6194484, Dec 04 1996 Construction Research & Technology GmbH Coating material
6194486, May 28 1997 Northrop Grumman Systems Corporation Enhanced paint for microwave/millimeter wave radiometric detection applications and method of road marker detection
6287695, Aug 30 1996 ECKART GMBH Corrosion-stable aluminum pigments and process for the production thereof
6288837, Dec 06 1994 General Atomics Broadband infrared and signature control materials and methods of producing the same
6366397, Mar 10 2000 ORIGIN ELECTRIC COMPANY, LIMITED Infrared radiation reflector and infrared radiation transmitting composition
6414332, Nov 15 1999 National Technology & Engineering Solutions of Sandia, LLC Media for control of thermal emission and methods of applications thereof
6414606, May 28 1997 Northrop Grumman Systems Corporation Enhanced paint for microwave/millimeter wave radiometric detection applications and method of road marker detection
6454848, Oct 26 1998 Ferro Corporation Infrared reflective color pigment
6521038, Dec 21 2000 Dainichiseika Color & Chemicals Mfg. Co., Ltd. Near-infrared reflecting composite pigments
6692824, Dec 21 1991 Evonik Rohm GmbH Infrared-reflecting bodies
7157112, Mar 26 2004 TEXTURED COATINGS OF AMERICA; TEXTURED COATINGS OF AMERICA, INC Infrared reflective wall paint
7241500, Oct 06 2003 CertainTeed LLC Colored roofing granules with increased solar heat reflectance, solar heat-reflective shingles, and process for producing same
7452598, Oct 06 2003 CertainTeed Corporation Mineral-surfaced roofing shingles with increased solar heat reflectance, and process for producing same
7455899, Oct 07 2003 3M Innovative Properties Company Non-white construction surface
7455904, Jul 11 2003 Qinetiq Limited Thermal infrared reflective pigments for coatings
7521118, Aug 07 2000 BASF SE Flat element having a dark surface exhibiting a reduced solar absorption
7648755, Oct 07 2003 3M Innovative Properties Company Non-white construction surface
7749593, Jul 07 2006 CertainTeed Corporation Solar heat responsive exterior surface covering
7846548, Oct 27 2006 CertainTeed Corporation Fence or decking materials with enhanced solar reflectance
7919170, Oct 07 2003 3M Innovative Properties Company Non-white construction surface
7951418, Jul 11 2003 Qinetiq Limited Method for forming coatings comprising thermal infra-red reflective pigments
8017224, Jul 07 2006 CertainTeed Corporation Solar heat responsive exterior surface covering
8114516, Oct 06 2003 CertainTeed LLC Colored roofing granules with increased solar heat reflectance, solar heat-reflective shingles, and process for producing same
8187964, Nov 01 2007 Infineon Technologies AG Integrated circuit device and method
8206629, Oct 27 2006 CertainTeed Corporation Fence or decking materials with enhanced solar reflectance
8277943, Oct 05 2005 CertainTeed Corporation Thin films with high near-infrared reflectivity deposited on building materials
8298655, Jul 07 2006 CertainTeed Corporation Solar heat responsive exterior surface covering
8361597, Apr 02 2007 CertainTeed Corporation Solar heat-reflective roofing granules, solar heat-reflective shingles, and process for producing same
8394498, Dec 16 2008 CertainTeed Corporation Roofing granules with high solar reflectance, roofing materials with high solar reflectance, and the process of making the same
8491985, Mar 31 2008 CertainTeed Corporation Coating compositions for roofing granules, dark colored roofing granules with increased solar heat reflectance, solar heat-reflective shingles, and process for producing the same
8535803, Oct 06 2003 CertainTeed LLC Colored roofing granules with increased solar heat reflectance, solar heat-reflective shingles, and process for producing same
8551619, Oct 05 2005 CertainTeed Corporation Thin films with high near-infrared reflectivity deposited on building materials
8628850, Oct 06 2003 CertainTeed LLC Colored roofing granules with increased solar heat reflectance, solar heat-reflective shingles, and process for producing same
8637116, Aug 20 2009 CertainTeed Corporation Process for preparing roofing granules comprising organic colorant, with improved luster, and roofing products including such granules
8673427, Aug 18 2011 CertainTeed Corporation System, method and apparatus for increasing average reflectance of a roofing product for sloped roof
8722140, Sep 22 2009 CertainTeed Corporation Solar heat-reflective roofing granules, solar heat-reflective shingles, and process for producing the same
8790778, Dec 16 2008 CertainTeed Corporation Roofing granules with high solar reflectance, roofing materials with high solar reflectance, and the process of making the same
8808838, Dec 23 2011 TEXTURED COATINGS OF AMERICA, INC Surface coatings and methods
8871334, Jul 07 2006 CertainTeed Corporation Solar heat responsive exterior surface covering
8997427, Aug 18 2011 CertainTeed Corporation System, method and apparatus for increasing average reflectance of a roofing product for sloped roof
9000068, Aug 05 2005 ECKART GMBH Metal effect pigments comprising a mixed inorganic/organic layer, method for the production of such metal effect pigments, and use thereof
9200451, Oct 06 2003 CertainTeed LLC Colored roofing granules with increased solar heat reflectance, solar heat-reflective shingles, and process for producing same
9371450, Jan 10 2014 BMIC LLC Flake having multilayer coatings with optical and thermal properties
9498931, Nov 30 2005 3M Innovative Properties Company Energy efficient construction materials
9499697, Oct 02 2007 PPG Industries Ohio, Inc Coating composition and a reflective coating system including same
9567469, Dec 23 2011 TEXTURED COATINGS OF AMERICA, INC Surface coatings and methods
9896029, Jul 26 2016 Ford Global Technologies, LLC Vehicle components utilizing detectable layers
9909316, Oct 05 2005 CertainTeed Corporation Thin films with high near-infrared reflectivity deposited on building materials
9957370, Aug 05 2005 ECKART GMBH Metal effect pigments comprising a mixed inorganic/organic layer, method for the production of such metal effect pigments, and use thereof
9980480, Apr 04 2006 CertainTeed LLC Biocidal roofing granules, roofing products including such granules, and process for preparing same
Patent Priority Assignee Title
4131593, Jul 19 1976 The United States of America as represented by the Secretary of the Air Low infrared emissivity paints comprising an oxime cured silicone binder
JP65751,
JP86638,
JP258875,
Executed onAssignorAssigneeConveyanceFrameReelDoc
Date Maintenance Fee Events
Sep 20 1993M283: Payment of Maintenance Fee, 4th Yr, Small Entity.
Feb 13 1998REM: Maintenance Fee Reminder Mailed.
Apr 12 1998EXP: Patent Expired for Failure to Pay Maintenance Fees.


Date Maintenance Schedule
Apr 10 19934 years fee payment window open
Oct 10 19936 months grace period start (w surcharge)
Apr 10 1994patent expiry (for year 4)
Apr 10 19962 years to revive unintentionally abandoned end. (for year 4)
Apr 10 19978 years fee payment window open
Oct 10 19976 months grace period start (w surcharge)
Apr 10 1998patent expiry (for year 8)
Apr 10 20002 years to revive unintentionally abandoned end. (for year 8)
Apr 10 200112 years fee payment window open
Oct 10 20016 months grace period start (w surcharge)
Apr 10 2002patent expiry (for year 12)
Apr 10 20042 years to revive unintentionally abandoned end. (for year 12)